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A Bioluminescent and Fluorescent Orthotopic Syngeneic Murine Model of Androgen-dependent and Castration-resistant Prostate Cancer
Published on: March 6, 2018
Standing Variations Modeling Captures Inter-Individual Heterogeneity in a Deterministic Model of Prostate Cancer
Harsh Vardhan Jain1, Inmaculada C Sorribes2, Samuel K Handelman3
1Department of Mathematics & Statistics, University of Minnesota Duluth, Duluth, MN 55812, USA.
Abstract:
Sipuleucel-T (Provenge) is the first live cell vaccine approved for advanced, hormonally refractive prostate cancer. However, survival benefit is modest and the optimal combination or schedule of sipuleucel-T with androgen depletion remains unknown. We employ a nonlinear dynamical systems approach to modeling the response of hormonally refractive prostate cancer to sipuleucel-T. Our mechanistic model incorporates the immune response to the cancer elicited by vaccination, and the effect of androgen depletion therapy. Because only a fraction of patients benefit from sipuleucel-T treatment, inter-individual heterogeneity is clearly crucial. Therefore, we introduce our novel approach, Standing Variations Modeling, which exploits inestimability of model parameters to capture heterogeneity in a deterministic model. We use data from mouse xenograft experiments to infer distributions on parameters critical to tumor growth and to the resultant immune response. Sampling model parameters from these distributions allows us to represent heterogeneity, both at the level of the tumor cells and the individual (mouse) being treated. Our model simulations explain the limited success of sipuleucel-T observed in practice, and predict an optimal combination regime that maximizes predicted efficacy. This approach will generalize to a range of emerging cancer immunotherapies.
Insights
Sipuleucel-T (Provenge) offers modest survival benefits for advanced prostate cancer. A new modeling approach, Standing Variations Modeling, explains limited efficacy and predicts optimal combination strategies for this cancer immunotherapy.
Area of Science:
- Oncology
- Immunology
- Mathematical Biology
Background:
- Sipuleucel-T (Provenge) is an FDA-approved immunotherapy for advanced, hormone-refractory prostate cancer.
- The modest survival benefit and optimal combination with androgen depletion therapy (ADT) remain unclear.
Purpose of the Study:
- To develop a mechanistic model for advanced prostate cancer response to Sipuleucel-T and ADT.
- To investigate inter-individual heterogeneity using Standing Variations Modeling.
- To predict optimal combination regimens for enhanced efficacy.
Main Methods:
- Employed a nonlinear dynamical systems approach to model cancer response.
- Incorporated immune response to vaccination and ADT effects.
- Utilized Standing Variations Modeling to capture parameter inestimability and heterogeneity.
- Inferred parameter distributions from mouse xenograft data.
Main Results:
- Model simulations explain the limited clinical success of Sipuleucel-T.
- Identified critical parameters for tumor growth and immune response.
- Predicted an optimal combination regimen to maximize treatment efficacy.
Conclusions:
- Standing Variations Modeling effectively captures heterogeneity in cancer immunotherapy response.
- The approach provides a framework for optimizing Sipuleucel-T and other emerging immunotherapies.
- This modeling strategy can generalize to various cancer immunotherapies.
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